Author
Listed:
- Gargee Sharma
(National University of Singapore
Indian Institute of Technology Mandi)
- Indra Yudhistira
(National University of Singapore
National University of Singapore)
- Nilotpal Chakraborty
(National University of Singapore
Yale-NUS College
Max-Planck-Institut für Physik komplexer Systeme)
- Derek Y. H. Ho
(National University of Singapore
Yale-NUS College)
- M. M. Al Ezzi
(National University of Singapore
National University of Singapore)
- Michael S. Fuhrer
(Monash University
Monash University)
- Giovanni Vignale
(National University of Singapore
Yale-NUS College
University of Missouri)
- Shaffique Adam
(National University of Singapore
National University of Singapore
Yale-NUS College
National University of Singapore)
Abstract
Understanding the normal-metal state transport in twisted bilayer graphene near magic angle is of fundamental importance as it provides insights into the mechanisms responsible for the observed strongly correlated insulating and superconducting phases. Here we provide a rigorous theory for phonon-dominated transport in twisted bilayer graphene describing its unusual signatures in the resistivity (including the variation with electron density, temperature, and twist angle) showing good quantitative agreement with recent experiments. We contrast this with the alternative Planckian dissipation mechanism that we show is incompatible with available experimental data. An accurate treatment of the electron-phonon scattering requires us to go well beyond the usual treatment, including both intraband and interband processes, considering the finite-temperature dynamical screening of the electron-phonon matrix element, and going beyond the linear Dirac dispersion. In addition to explaining the observations in currently available experimental data, we make concrete predictions that can be tested in ongoing experiments.
Suggested Citation
Gargee Sharma & Indra Yudhistira & Nilotpal Chakraborty & Derek Y. H. Ho & M. M. Al Ezzi & Michael S. Fuhrer & Giovanni Vignale & Shaffique Adam, 2021.
"Carrier transport theory for twisted bilayer graphene in the metallic regime,"
Nature Communications, Nature, vol. 12(1), pages 1-11, December.
Handle:
RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-25864-1
DOI: 10.1038/s41467-021-25864-1
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